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Research on Credit Evaluation Model of Online Store Based on SnowNLP

机译:基于Snownlp的网上商店信用评估模型研究

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The online store credit rating is a reflection of the seller's integrity and the quality of the product. The level of the credit rating directly affects the buyer's desire to purchase. Two important factors affecting the credit rating are data and models. The innovation of this research is that the collected data comes from the second evaluation, and the credit evaluation model is improved based on the snowNLP tool, and the malicious brushing filtering function is added. Compared with the credit evaluation system commonly used in current online stores, the evaluation results of the paper are more accurate, detailed and intuitive, and may effectively reduce false brushing and threat review.
机译:在线商店信用评级是卖方的完整性和产品质量的反映。信用评级的水平直接影响买方对购买的愿望。影响信用评级的两个重要因素是数据和模型。本研究的创新是收集的数据来自第二个评估,基于SnownLP工具提高了信用评估模型,并添加了恶意刷新过滤功能。与当前在线商店常用的信用评估系统相比,本文的评估结果更准确,细致,直观,并有效降低虚假刷新和威胁审查。

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